DOE OSTI · 3374452
Heterogeneous fatigue damage in a nickel-based single-crystal superalloy unraveled using correlative 3D X-ray technology
Abstract
Nickel-based single-crystal (Ni-SX) superalloys under cyclic stress are susceptible to cracking at stress-concentration sites, eventually leading to low-cycle fatigue (LCF) failure. LCF cracks typically originate from intrinsic defects (e.g., voids and carbides) within solidified dendrites. However, systematic quantitative experimental analyses of defect-mediated local damage remain limited. To thoroughly understand the microscopic origins and evolution of LCF damage, correlated 3D mapping of dendrites across various regions is essential. Here, in this study, macroscale micro-computed tomography (μ-CT) was initially used to capture internal interdendritic secondary cracks within bulk DD413 superalloy after LCF testing at 760 °C. Subsequently, a multimodal methodology combining synchrotron 3D microdiffraction (3D-μXRD), high-resolution μ-CT, and electron microscopy was established. This approach allowed precise localization of internal damage zones near interdendritic secondary cracks and detailed mapping of the 3D correlated distributions of dendrites, defects, and residual stress/strain fields within these zones at submicron spatial resolution. Finally, the same approach was applied to specimens subjected to interrupted loading at approximately 40 % of the fatigue life to uncover the early damage states of dendrites. The dendrite cores (DCs) and interdendritic regions (IDs) exhibit microscale heterogeneous mechanical responses: nearly defect-free DCs accumulate local irreversible slip along specific slip systems to generate slip bands, while the IDs containing various defects accommodate local microplasticity through the activation of multiple slip systems around these defects. The local tensile stress near defects in the IDs exceeds that in the DC slip band regions by more than threefold, leading to the generation of local damage zones within the IDs. Chain-like defect distributions facilitate the interconnection of these local zones into a continuous damage region, further elevating the overall tensile stress in the IDs. Additionally, geometrically necessary dislocations alone are insufficient as indicators of LCF damage; both the internal stress state and its magnitude must be considered. These experimental results provide critical data and insights for the development of multi-physics fatigue models.
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Zhou, Zaifeng [University of Science and Technology Beijing (China)], Li, Runguang [University of Science and Technology Beijing (China)] (ORCID:0000000153950470), Wang, Youkang [Chinese Academy of Sciences (CAS), Beijing (China); Spallation Neutron Source Science Center, Dongguan (China)], Li, Shilei [University of Science and Technology Beijing (China)], Song, Chao [University of Science and Technology Beijing (China)], Xie, Guang [Chinese Academy of Sciences (CAS), Shenyang (China)], Zhang, Jian [Chinese Academy of Sciences (CAS), Shenyang (China)], Cheng, Guofeng [Chinese Academy of Sciences (CAS), Shanghai (China)], Feng, Qiang [University of Science and Technology Beijing (China)], Cormier, Jonathan [Centre National de la Recherche Scientifique (CNRS), Chasseneuil-du-Poitou (France). Institut Pprime; École Nationale Supérieure de Mécanique et d’Aérotechnique (ISAE-ENSMA), Chasseneuil-du-Poitou (France)] (ORCID:0000000246134472), Liu, Wenjun [Argonne National Laboratory (ANL), Argonne, IL (United States)], Wang, Yan-Dong [University of Science and Technology Beijing (China); Liaoning Academy of Materials, Shenyang (China)]. 2025-07-11. Heterogeneous fatigue damage in a nickel-based single-crystal superalloy unraveled using correlative 3D X-ray technology. https://doi.org/10.1016/j.actamat.2025.121326
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